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Two and three dimensional simulations of supersonic cavity flow
Jo Kim Hyung
, Selin Aradag
,
Doyle D. Knight
School of Engineering, Mechanical & Aerospace Engineering
Research output
:
Chapter in Book/Report/Conference proceeding
›
Conference contribution
11
Scopus citations
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Dive into the research topics of 'Two and three dimensional simulations of supersonic cavity flow'. Together they form a unique fingerprint.
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Keyphrases
Three-dimensional (3D)
100%
Two-dimensional Simulation
100%
Supersonic Cavity Flow
100%
Three Dimensional Simulation
100%
Two Dimensional
66%
Turbulence Model
33%
Reynolds-averaged Navier-Stokes Equations
33%
Pressure Distribution
33%
Flow Physics
33%
Mach number
33%
Roe Scheme
33%
Supersonic Flow
33%
Free Stream
33%
Rectangular Cavity
33%
Numerical Flux
33%
Sound Pressure Level
33%
Cavity Flow Oscillation
33%
Acoustic Sound
33%
Engineering
Experimental Result
100%
Cavity Flow
100%
Two Dimensional
66%
Reynolds-Averaged Navier-Stokes
33%
Simulation Result
33%
Initial Condition
33%
Flow Physic
33%
Supersonic Flow
33%
Rectangular Cavity
33%
Free-Stream Mach Number
33%
Sound Pressure Level
33%
Navier-Stokes Equation
33%
Pressure Distribution
33%